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Development and Maintenance of a Preclinical Patient Derived Tumor Xenograft Model for the Investigation of Novel Anti-Cancer Therapies
Published on: September 30, 2016
Tumor-stroma interactions reduce the efficacy of adenoviral therapy through the HGF-MET pathway
Takaharu Yasui1, Kenoki Ohuchida, Ming Zhao
1Department of Surgery and Oncology, Graduate School of Medical Sciences, Kyushu University, Fukuoka, Japan.
Abstract:
Many preclinical studies have shown the potential of adenovirus-based cancer gene therapy. However, successful translation of these promising results into the clinic has not yet been achieved. Pancreatic ductal adenocarcinoma (PDAC) is characterized by abundant desmoplastic stroma, and tumor-stromal cell interactions play a critical role in tumor progression. Therefore, we hypothesized that tumor-stroma interactions reduce the efficacy of adenoviral therapy. We investigated the effect of fibroblasts on adenovirus-based gene therapy using SUIT-2 and PANC-1 pancreatic cancer cells cultured with or without fibroblast-conditioned culture supernatant then infected with Ad-LacZ. After 48 h, the cells were stained for β-galactosidase. The results showed that the number of β-galactosidase-positive cells was significantly reduced after culture with fibroblast-conditioned supernatant (P < 0.05). Because the hepatocyte growth factor (HGF)/MET pathway plays an important role in tumor-stroma interactions we next investigated the involvement of this pathway in tumor-stroma interactions leading to the decreased efficacy of adenoviral therapy. SUIT-2 cells were cultured with or without SU11274 (a MET inhibitor) and/or fibroblast-conditioned culture supernatant, then infected with Ad-GFP. After 48 h, GFP-positive cells were counted. The number of GFP-positive cells in cultures containing fibroblast-conditioned supernatant plus SU11274 was significantly greater than in cultures without SU11274. In conclusion, our results suggest that stromal cells in PDAC reduce the efficacy of adenoviral therapy through a mechanism involving the HGF/MET pathway. Control of such tumor-stroma interactions may lead to improvements in adenoviral gene therapy for PDAC.
Insights
Stromal cells in pancreatic cancer reduce the effectiveness of adenovirus gene therapy. Targeting the HGF/MET pathway may improve treatment outcomes for pancreatic ductal adenocarcinoma.
Area of Science:
- Oncology
- Gene Therapy
- Cancer Biology
Background:
- Adenovirus-based cancer gene therapy shows preclinical promise but faces clinical translation challenges.
- Pancreatic ductal adenocarcinoma (PDAC) features a dense desmoplastic stroma, where tumor-stromal interactions are key to progression.
- Tumor-stromal interactions are hypothesized to impede the efficacy of adenoviral therapy.
Purpose of the Study:
- To investigate how tumor-stroma interactions affect adenovirus-based gene therapy efficacy in pancreatic cancer.
- To explore the role of the hepatocyte growth factor (HGF)/MET pathway in mediating the suppressive effects of stromal cells on adenoviral therapy.
Main Methods:
- Pancreatic cancer cells (SUIT-2, PANC-1) were cultured with or without fibroblast-conditioned supernatant.
- Cells were infected with adenoviruses carrying reporter genes (Ad-LacZ, Ad-GFP).
- The effect of a MET inhibitor (SU11274) on adenoviral transduction in the presence of fibroblast supernatant was assessed.
Main Results:
- Fibroblast-conditioned supernatant significantly reduced the number of cells expressing the reporter gene (β-galactosidase, GFP).
- Pre-treatment with a MET inhibitor (SU11274) partially restored adenoviral gene expression in the presence of fibroblast supernatant.
- These findings indicate that stromal cells, via the HGF/MET pathway, decrease adenoviral therapy efficacy.
Conclusions:
- Stromal cells within the PDAC microenvironment negatively impact adenoviral gene therapy effectiveness.
- The HGF/MET signaling pathway is implicated in the mechanism by which stromal cells reduce adenoviral transduction.
- Modulating tumor-stroma interactions presents a potential strategy to enhance adenoviral gene therapy for PDAC.
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